BD-Net: Has Depth-Wise Convolution Ever Been Applied in Binary Neural Networks?
DoYoung Kim, Jin-Seop Lee, Noo-Ri Kim, SungJoon Lee, Jee-Hyong Lee
摘要
Recent advances in model compression have highlighted the potential of low-bit precision techniques, with Binary Neural Networks (BNNs) attracting attention for their extreme efficiency. However, extreme quantization in BNNs limits representational capacity and destabilizes training, posing significant challenges for lightweight architectures with depth-wise convolutions. To address this, we propose a 1.58-bit convolution to enhance expressiveness and a pre-BN residual connection to stabilize optimization by improving the Hessian condition number. These innovations enable, to the best of our knowledge, the first successful binarization of depth-wise convolutions in BNNs. Our method achieves 33M OPs on ImageNet with MobileNet V1, establishing a new state-of-the-art in BNNs by outperforming prior methods with comparable OPs. Moreover, it consistently outperforms existing methods across various datasets, including CIFAR-10, CIFAR-100, STL-10, Tiny ImageNet, and Oxford Flowers 102, with accuracy improvements of up to 9.3 percentage points.
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它引用的顶会 Paper8
- Searching for MobileNetV3Andrew Howard, Ruoming Pang, Hartwig Adam, Quoc V. Le 等ICCV 2019 · 被引用 9,163 次
- Overcoming Oscillations in Quantization-Aware TrainingMarkus Nagel, Marios Fournarakis, Yelysei Bondarenko, Tijmen BlankevoortICML 2022 · 被引用 163 次
- INSTA-BNN: Binary Neural Network with INSTAnce-aware ThresholdChanghun Lee, Hyungjun Kim, Eunhyeok Park, Jae-Joon KimICCV 2023 · 被引用 16 次
- A&B BNN: Add&Bit-Operation-Only Hardware-Friendly Binary Neural NetworkRuichen Ma, Guanchao Qiao, Yian Liu, Liwei Meng 等CVPR 2024 · 被引用 4 次
- Binarizing MobileNet via Evolution-Based SearchingHai Phan, Zechun Liu, Dang Huynh, Marios Savvides 等CVPR 2020
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